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首页> 外文期刊>Proceedings of the Royal Society. Mathematical, physical and engineering sciences >On molecular diffusion in nanostructured porous media: Interfacial exchange kinetics and surface diffusion
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On molecular diffusion in nanostructured porous media: Interfacial exchange kinetics and surface diffusion

机译:关于纳米结构多孔介质中的分子扩散:界面交换动力学和表面扩散

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Water-vapour transport in nanostructured composite materials is poorly understood because diffusion and interfacial exchange kinetics are coupled. We formulate an interfacial balance that couples diffusion in dispersed and continuous phases to adsorption, absorption and interfacial surface diffusion. This work is motivated by water-vapour transport in cellulose fibre-based barriers, but the model applies to nanostructured porous media such as catalysts, chromatography columns, nanocomposites, cementitious structures and biomaterials. The interfacial balance can be applied in an analytical or a computational framework to porous media with any microstructural geometry. Here, we explore its capabilities in a model porous medium: randomly dispersed solid spheres in a continuous (humid) gas. We elucidate the roles of equilibrium moisture uptake, solid, gas and surface diffusion coefficients, inclusion size and interfacial exchange kinetics on the effective diffusivity. We then apply the local model to predict water-vapour transport rates under conditions in which the effective diffusivity varies through the cross section of a dense, homogeneous membrane that is subjected to a finite moisture-concentration gradient. As the microstructural length scale decreases from micrometres to nanometres, interfacial exchange kinetics and surface diffusion produce a maximum in the tracer flux. This optimal flux is flanked, respectively, by interfacial-kinetic- and diffusion-limited transport at smaller and larger microscales.
机译:由于扩散和界面交换动力学是耦合的,因此人们对纳米结构复合材料中水蒸气的输送了解甚少。我们制定了一种界面平衡,将分散相和连续相中的扩散耦合到吸附,吸收和界面表面扩散。这项工作的动机是基于水蒸汽在纤维素纤维基屏障中的传输,但是该模型适用于纳米结构的多孔介质,例如催化剂,色谱柱,纳米复合材料,胶结结构和生物材料。界面平衡可以在分析或计算框架中应用于具有任何微结构几何形状的多孔介质。在这里,我们探索了其在模型多孔介质中的功能:在连续(潮湿)气体中随机分散的固体球体。我们阐明了平衡水分吸收,固体,气体和表面扩散系数,夹杂物大小和界面交换动力学对有效扩散率的作用。然后,我们应用局部模型来预测在有效扩散系数通过受限制的水分浓度梯度的致密,均匀膜的横截面变化的条件下的水蒸气传输速率。随着微观结构长度尺度从微米减小到纳米,界面交换动力学和表面扩散使示踪剂通量达到最大值。该最佳通量分别在较小和较大的微尺度上通过界面动力学和扩散受限的传输进行侧接。

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